Various embodiments of the present disclosure can include systems, methods, and non-transitory computer readable media configured to identify a set of features associated with at least one of a collection of residences or an energy billing period. Measured energy consumption information and a plurality of feature values can be acquired for each residence in the collection of residences. Each feature value in the plurality of feature values can correspond to a respective feature in the set of features. A regression model can be trained based on the measured energy consumption information and the plurality of features values for each residence in the collection of residences. At least one expected consumption value and at least one efficient consumption value can be determined based on the regression model.
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2. The computer-implemented method of claim 1, wherein the one or more resources are energy-related.
3. The computer-implemented method of claim 1, wherein the one or more resources comprise electricity.
4. The computer-implemented method of claim 1, wherein the set of features comprises a location of each building.
5. The computer-implemented method of claim 4, wherein the location of each building comprises an address or coordinates of the building.
6. The computer-implemented method of claim 1, wherein the set of features comprises an age of each building.
7. The computer-implemented method of claim 1, wherein the set of features comprises data about a cooling appliance and a heating appliance in each building.
8. The computer-implemented method of claim 1, wherein (b) comprises obtaining the plurality of feature values from a customer information system.
9. The computer-implemented method of claim 1, wherein (b) comprises obtaining the measured consumption information from a meter data management system.
10. The computer-implemented method of claim 1, wherein (c) comprises determining a regression parameter for each feature in the set of features.
11. The computer-implemented method of claim 10, wherein (d) comprises providing the plurality of feature values to the regression model.
12. The computer-implemented method of claim 11, wherein providing the plurality of feature values to the regression model comprises multiplying each of the plurality of feature values by the regression parameter for each feature in the set of features.
13. The computer-implemented method of claim 11, wherein the regression model comprises a linear regression model.
14. The computer-implemented method of claim 1, wherein the at least one expected consumption value is an average expected consumption value associated with the consumption of the one or more resources.
15. The computer-implemented method of claim 1, wherein the outputting comprises displaying a graph or chart on the resource management platform.
16. The computer-implemented method of claim 15, further comprising outputting a recommendation to reduce consumption of the one or more resources on the resource management platform based on at least the at least one expected consumption value.
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April 22, 2021
November 19, 2024
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